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US20140336474A1 - Hybrid communication system for implantable devices and ultra-low power sensors - Google Patents

Hybrid communication system for implantable devices and ultra-low power sensors
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US20140336474A1
US20140336474A1US14/276,827US201414276827AUS2014336474A1US 20140336474 A1US20140336474 A1US 20140336474A1US 201414276827 AUS201414276827 AUS 201414276827AUS 2014336474 A1US2014336474 A1US 2014336474A1
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sensor
base unit
patient
signals
circuit
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US14/276,827
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US9544068B2 (en
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Mohammad Amin Arbabian
Marcus Weber
Jayant Charthad
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Leland Stanford Junior University
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Leland Stanford Junior University
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Assigned to THE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITYreassignmentTHE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITYASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: ARBABIAN, MOHAMMAD AMIN, CHARTHAD, JAYANT, WEBER, MARCUS
Publication of US20140336474A1publicationCriticalpatent/US20140336474A1/en
Priority to US15/371,648prioritypatent/US10014570B2/en
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Abstract

Aspects of the present disclosure are directed toward apparatuses, systems, and methods that include a base unit and a communication circuit that communicate, while implanted in a patient, signals between the patient and at least one device located external to the patient. The base unit also includes a transducer that communicates ultrasound (US) signals between the base unit and the at least one device located external to the patient, and harvests energy carried by the US signals.

Description

Claims (20)

What is claimed is:
1. An apparatus comprising:
a base unit including a communication circuit, the base unit and the communication circuit configured and arranged to communicate, while implanted in a patient, signals between the patient and at least one device located external to the patient; and
an electrical circuit secured by the base unit and including
at least one transducer configured and arranged to communicate ultrasound (US) signals between the base unit and the at least one device located external to the patient, and to harvest energy carried by the US signals,
a capacitor circuit configured and arranged to store the energy harvested by the transducer; and
a power circuit configured and arranged to power-up the base unit based on the energy harvested by the transducer and stored by the capacitor circuit, and prompt the communication circuit to transmit signals characterizing the patient's biological or physiological attribute to the at least one device located external to the patient.
2. The apparatus ofclaim 1, further including an antenna configured and arranged with the communication circuit to communicate radio frequency (RF) signals between the base unit and the at least one device located external to the patient including downlink data from the device located external to the patient, and wherein the signals characterizing the patient's biological or physiological attribute are duty-cycled or intermittent, and the transducer is an acoustic transducer, and the communication circuit is configured and arranged to transmit the signals using a pulse-based communication scheme that includes periodic bursts of energy, that last less than 100 nanoseconds, at RF or microwave frequencies that are between 0.1 GHz and 10 GHz.
3. The apparatus ofclaim 2, wherein the communication circuit is configured and arranged to transmit the signals using a pulse-based communication scheme that includes periodic bursts of energy, that last less than 100 nanoseconds, at RF or microwave frequencies that are between 0.1 GHz and 10 GHz, and the pulse-based communication scheme includes utilizing at least one of pulse position modulation (PPM), multi-PPM, pulse-amplitude modulation (PAM), and pulse width modulation (PWM).
4. The apparatus ofclaim 1, further including the device located external to the patient, and the base unit is further configured and arranged and sized to communicate with the device located external to the patient and other base units, constructed according to the first-recited base unit ofclaim 1, using a combination of (RF) and US signals.
5. The apparatus ofclaim 1, wherein the signals characterizing the patient's biological or physiological attribute are duty-cycled or intermittent, and the base unit further includes an oscillator circuit configured and arranged to generate the signals; a pulser circuit configured and arranged to modulate the pulse-based signals; and a power amplifier circuit configured and arranged to buffer the pulse-based signals and transmit the pulse-based signals via the antenna.
6. The apparatus ofclaim 1, wherein the signals are active pulse transmission signals, and the base unit further includes an oscillator circuit configured and arranged to generate the active pulse transmission signals; a pulser circuit configured and arranged to modulate the active pulse transmission signals; and a power amplifier circuit configured and arranged to buffer the active pulse transmission signals and transmit the active pulse transmission signals via the antenna.
7. The apparatus ofclaim 1, wherein the base unit further includes a light emitting diode (LED) or other light source and the power circuit is configured and arranged to power-up the LED based on the energy stored by the capacitor circuit and activate the LED periodically or based on a pattern that is communicated to the base unit via the downlink data.
8. The apparatus ofclaim 1, wherein the base unit further includes at least one of a chemical sensor, a molecular sensor, an impedance sensor, a fluorescence sensor, a temperature sensor, an optical sensor, and a vibrational sensor, wherein the power circuit is configured and arranged to power-up and activate operational aspects of at least one of the chemical sensor, the molecular sensor, the impedance sensor, the fluorescence sensor, the temperature sensor, the optical sensor, the voltage or electrical activity probe or sensor, and the vibrational sensor.
9. The apparatus ofclaim 1, wherein the base unit further includes at least one of a chemical sensor, a molecular sensor, an impedance sensor, a fluorescence sensor, a temperature sensor, the voltage or electrical activity probe or sensor, an optical sensor, an electrical probe, and a vibrational sensor, wherein the power circuit is configured and arranged to power-up and activate operational aspects of at least one of the chemical sensor, the molecular sensor, the impedance sensor, the fluorescence sensor, the temperature sensor, the optical sensor, and the vibrational sensor, and the base unit is further configured and arranged to use RF frequencies to transmit the pulse-based signals and uplink communication data indicative of the operation of the sensor from the base unit to the device located external to the patient.
10. An apparatus comprising:
at least one device located external to a patient configured and arranged to communicate with (RF) signals and ultrasound (US) signals;
a base unit including a communication circuit, the base unit and the communication circuit configured and arranged to communicate, while implanted in the patient, signals between the patient and the device located external to the patient; and
an electrical circuit secured by the base unit and including
an antenna configured and arranged with the communication circuit to communicate (RF) signals, including downlink data, between the base unit and the device located external to the patient,
at least one transducer configured and arranged to communicate US signals between the base unit and the device located external to the patient, and to harvest energy carried by the US signals,
a capacitor circuit configured and arranged to store the energy harvested by the transducer; and
a power circuit configured and arranged to power-up the base unit based on the energy harvested by the transducer and stored by the capacitor circuit, and prompt the communication circuit to transmit pulse-based signals characterizing the patient's biological or physiological attribute, via the antenna, to the device located external to the patient.
11. The apparatus ofclaim 10, wherein the base unit further includes at least one of a chemical sensor, a molecular sensor, an impedance sensor, a fluorescence sensor, a temperature sensor, an optical sensor, and a vibrational sensor, wherein the power circuit is configured and arranged to power-up and activate operational aspects of at least one of the chemical sensor, the molecular sensor, the impedance sensor, the fluorescence sensor, the temperature sensor, the optical sensor, and the vibrational sensor, and the base unit is further configured and arranged to use RF frequencies and US signals to transmit the pulse-based signals and uplink communication data indicative of the operation of the sensor from the base unit to the device located external to the patient.
12. The apparatus ofclaim 10, wherein the base unit further includes a sensor, and the power unit is configured and arranged to power-up and activate operational aspects of the sensor, and the base unit is further configured and arranged to use RF frequencies and US signals to transmit the pulse-based signals and uplink communication data indicative of the operation of the sensor from the base unit to the device located external to the patient, and the device located external to the patient is further configured and arranged to transmit further downlink communication data indicative of a further operation of the sensor in response to receiving the uplink communication data indicative of the operation of the sensor from the base unit to the device located external to the patient.
13. The apparatus ofclaim 10, the base unit is further configured and arranged and sized to communicate with the device located external to the patient and other base units, constructed according to the first-recited base unit ofclaim 10, using a combination of RF and US signals.
14. The apparatus ofclaim 10, wherein the base unit is further configured and arranged and sized to communicate with the device located external to the patient and other base units, constructed according to the first-recited base unit ofclaim 10, using a combination of (RF) and ultrasound (US) signals, and the base units and the device external to the patient are synchronized based on communication notches in the US signal that calibrates and corrects for mismatch, delay, skew, or jitter in communication between the base units and the external device.
15. The apparatus ofclaim 10, wherein the antenna, the transducer, the capacitor circuit, and the power circuit are provided as part of a silicon chip.
16. The apparatus ofclaim 10, wherein the transducer and the power circuit are provided as part of a silicon chip, and the antenna and the capacitor circuit are provided external to the silicon chip.
17. A method comprising:
implanting a base unit including a communication circuit in a patient, the base unit and the communication circuit being configured and arranged to communicate, while implanted in the patient, signals between the patient and at least one device located external to the patient,
communicating, via an antenna configured and arranged with the communication circuit, (RF) signals between the base unit and the at least one device located external to the patient including of downlink data from the external device
communicating ultrasound (US) signals between the base unit and the at least one device located external to the patient;
harvesting energy, via at least one transducer, carried by the US signals;
storing, via a capacitor circuit, the energy harvested by the transducer;
powering-up the base unit, via a power circuit, based on the energy harvested by the transducer and stored by the capacitor circuit; and
prompting the communication circuit to transmit pulse-based signals characterizing the patient's biological or physiological attribute, via the antenna, to the at least one device located external to the patient.
18. The method ofclaim 17, wherein the base unit further includes at least one of a chemical sensor, a molecular sensor, an impedance sensor, a fluorescence sensor, a temperature sensor, an optical sensor, and a vibrational sensor, and the capacitor circuit includes a piezoelectric or capacitive micro-machined transducer, and further including the steps of converting the US signal into electrical energy, via the piezoelectric or the capacitive micro-machined transducer, and storing the electrical energy in the capacitor circuit.
19. The method ofclaim 17, wherein the base unit further includes at least one of a chemical sensor, a molecular sensor, an impedance sensor, a fluorescence sensor, a temperature sensor, an optical sensor, and a vibrational sensor, and the capacitor circuit includes a piezoelectric or capacitive micro-machined transducer, and further including the steps of converting the US signal into electrical energy, via the piezoelectric or the capacitive micro-machined transducer, storing the electrical energy in the capacitor circuit, and operating the sensor based on the stored electrical energy.
20. The method ofclaim 17, wherein the base unit further includes a sensor, and operating the sensor includes one of providing sensing biological aspects by the sensor, actuating the sensor, or providing stimulation via the sensor based the downlink data that is communicated to the base unit.
US14/276,8272013-05-132014-05-13Hybrid communication system for implantable devices and ultra-low power sensorsActive2035-03-12US9544068B2 (en)

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US14/276,827US9544068B2 (en)2013-05-132014-05-13Hybrid communication system for implantable devices and ultra-low power sensors
US15/371,648US10014570B2 (en)2013-05-132016-12-07Single transducer for data and power in wirelessly powered devices

Applications Claiming Priority (2)

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US201361822763P2013-05-132013-05-13
US14/276,827US9544068B2 (en)2013-05-132014-05-13Hybrid communication system for implantable devices and ultra-low power sensors

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US15/371,648Continuation-In-PartUS10014570B2 (en)2013-05-132016-12-07Single transducer for data and power in wirelessly powered devices

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